# Models with symmetry-breaking phase transitions triggered by   dumbbell-shaped equipotential surfaces

**Authors:** Fabrizio Baroni

arXiv: 1903.12504 · 2020-07-10

## TL;DR

This paper introduces two theoretical models demonstrating how symmetry-breaking phase transitions can be triggered by dumbbell-shaped potential energy surfaces, providing insights into the geometric mechanisms behind such transitions.

## Contribution

The paper presents two new models illustrating the geometric mechanism of $	ext{Z}_2$-symmetry breaking transitions, emphasizing the role of dumbbell-shaped equipotential surfaces.

## Key findings

- Models clearly show the symmetry-breaking mechanism.
- Landscape of one model is equivalent to a simplified mean-field $	ext{phi}^4$ model.
- Provides geometric-topological perspective on phase transitions.

## Abstract

In some recent papers some sufficiency conditions for the occurrence of a $\mathbb{Z}_2$-symmetry breaking phase transition ($\mathbb{Z}_2$-SBPT) have been showed starting from geometric-topological concepts of potential energy landscapes. In particular, a $\mathbb{Z}_2$-SBPT can be triggered by double-well potentials, or in an equivalent way, by dumbbell-shaped equipotential surfaces. In this paper we introduce two models with a $\mathbb{Z}_2$-SBPT which, due to their essential feature, show in the clearest way the generating-mechanism of a $\mathbb{Z}_2$-SBPT above mentioned. These models, despite they cannot be considered physical models, have all the features of such models with the same kind of SBPT. At the end of the paper, the $\phi^4$ model is revisited in the light of this approach. In particular, the landscape of one of the model introduced here is turned out to be equivalent to that of the mean-field $\phi^4$ model in a simplified version.

## Full text

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## Figures

29 figures with captions in the complete paper: https://tomesphere.com/paper/1903.12504/full.md

## References

41 references — full list in the complete paper: https://tomesphere.com/paper/1903.12504/full.md

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Source: https://tomesphere.com/paper/1903.12504